[0001] The present invention relates to a method and apparatus for use in controlling the
transmission power in a mobile radio satellite communication system. A particular
transmission power control method and apparatus for a mobile radio satellite communication
system to be described below, by way of example in illustration of the invention,
controls the transmission power based on received transmission power control information,
particularly when a channel is switched.
[0002] Previously proposed arrangements, which it is believed will be helpful in understanding
the invention, will now be described with reference to Figs. 3 to 5 of the accompanying
drawings, in which:-
Fig. 3 is a block schematic diagram showing the basic arrangement of a mobile radio
satellite communication system,
Fig. 4 is a block schematic diagram showing the transmission section of a gateway
station and a terminal/mobile station of the mobile radio satellite communication
system shown in Fig. 3, and
Fig. 5 is a time chart illustrating the variation in the transmission power using
the transmission power control apparatus of Fig. 3.
[0003] A satellite communication system which effects the channel access of a single channel
per carrier (SCPC)/frequency division multiple access (FDMA) system based on a demand
assignment will be described first. Referring to Fig. 3, there is shown a satellite
communication system of the type mentioned which normally includes a network control
station 11, which manages and controls the communications system, gateway stations
12 each connected to public switched telephone networks (PSTN), or private telephone
networks, terminals and mobile stations (hereinafter referred to as terminals/mobile
stations) 13, through which users access the satellite communications network, and
a communication satellite 14.
[0004] The network control station 11 supervises the entire network and successively transmits
channel signalling information by time division multiplex (TDM) communication using
a forward link (also called an outbound link). The TDM communication includes information
regarding an incoming call and the channel communication used. Each of the gateway
stations 12 and the terminal/mobile stations 13 receives information transmitted thereto
by the time division multiplex communication and effects a call request and responds
to an incoming call based on the received information using a return link (inbound).
The return link is used for the transmission of a call request and an incoming call
response burst signal transmitted from each of the gateway stations 12 and the terminal/mobile
stations 13 in a predetermined time slot, in accordance with the line information
of the time division multiplex communication in a time division multiple access (TDMA).
[0005] If the network control station 11 receives a call request and an incoming call response
signal transmitted from one of the gateway stations 12 and one of the terminal/mobile
stations 13 (including an indirect case wherein a terminal or a mobile station transmits
a call request to a gateway station and then the gateway station transmits a channel
assignment request), then it informs the gateway station 12 and the terminal/mobile
station 13 of an available communication channel over a signalling channel 15. Then,
when the gateway station 12 and the terminal/mobile station 13 receive the designated
communication channel, they set the channel so that a communication channel 16 is
thereafter used in place of the signalling channel 15. Then, through a predetermined
sequence, the terminal/mobile station 13 is connected to a PSTN or private switched
network (PSTN)/private switched network 17) through the communication satellite 14
and the gateway station 12.
[0006] The signalling channel 15, which carries control information in such a sequence of
channel connection operations as is described above, communicates the control information,
normally using a prescribed maximum transmission level as a standard level, so that
a call connection can be effected stably, even in a geographical condition in which
the elevation angle is small (which is the most critical communication condition in
call connection), in order to ensure a high degree of reliability of the communication
system. After the changeover to a communication channel, the transmission level is
adjusted so as to minimize any interference with another communication channel and
allow the most efficient utilization of the power of the satellite. Further, in a
mobile terminal which is driven by a battery, the power dissipation is minimized by
such transmission level control to allow utilization for a long time.
[0007] The transmission powers of the gateway station 12 and the terminal/mobile station
13 of the communication system described above are each controlled by an apparatus
such as is shown in Fig. 4.
[0008] Referring to Fig. 4, the apparatus shown includes a transmission power controller
1 for controlling the transmission power of a modulation signal frequency converted
by a frequency converter not shown, a power amplifier 2 for amplifying the power of
an output of the transmission power controller 1 to a predetermined transmission power,
and outputting the amplified power signal to an antenna not shown, a level detector
3 for detecting the output level of the power amplifier 2, a comparator 6 for comparing
the transmission level detected by the level detector 3 with a preset transmission
reference level to obtain any error in the level and an averaging circuit 9 for averaging
the error of the level from the comparator 6 and controlling the transmission power
controller 1 with the averaged level error.
[0009] In operation, upon transmission over the signalling channel 15, the transmission
level is set to the maximum standard transmission level, and the level of a transmission
signal detected by the level detector 3 during transmission is compared with the preset
transmission level value by the comparator 6 to obtain a level error. The level error
of the detected level from the preset transmission reference level is averaged by
the averaging circuit 9. Then, the transmission power is controlled so that, if the
detected transmission signal level is higher than the preset transmission level value,
then the transmission signal level may be decreased, but if the detected transmission
signal level is lower than the preset transmission level, then the decrease of the
transmission signal level may be decreased.
[0010] A channel is assigned in response to the channel assignment request in the signalling
channel 15, and communication via the communication channel 16 is started. After the
communication via the communication channel 16 has been started, the terminal/mobile
station 13 and the gateway station 12 individually measure the levels of the received
signals, set optimum transmission levels for the operation of the system and control
the transmission powers thereof. Such a control is disclosed, for example, in the
specification of Japanese Patent Laid-Open Application No. Heisei 8-237194. The transmission
power control for the signalling channel 15 is performed in a similar manner to that
for the communication channel 16, except that the preset transmission level values
set for the comparators are different.
[0011] After the communication over the communication channel 16 has been completed, communication
via the signalling channel 15 is enabled again. The transmission signal level is then
set to the standard maximum transmission level, but it is controlled, upon transmission,
to the predetermined transmission power by the operation described above.
[0012] While the transmission level is controlled in accordance with the procedure described
above, so that possible interference between communication channels may be minimized
and the power of the satellite may be utilized more efficiently, if the control step
of the transmission level becomes large, there is experienced the following problem,
which will be described with reference to Fig. 5 in which there are illustrated the
transmission powers when a channel to be used is changed over between a signalling
channel and a communication channel.
[0013] When, after communication over the communication channel has been started the transmission
level of a station is to be decreased to a lower level, because the received level
of the other station is sufficiently high, it is varied at a rate which can be followed
up sufficiently so that synchronization can be maintained on the reception side against
a variation in amplitude or phase. When the communication is terminated while the
transmission power is controlled stably at the lowest transmission level and then
communication over the signalling channel is enabled again, the transmission level
is set to the standard highest transmission level in preparation for next transmission.
When a control signal burst, such as a call request or an incoming call response,
is to be transmitted subsequently over the signalling channel, the top of the burst
is transmitted with the level controlled to the lower level over the communication
channel and the burst is started while the transmission level is controlled so as
to increase it to the highest level.
[0014] Therefore, it sometimes occurs that a power to noise power ratio of a carrier required
by the communication system is not obtained and this can give rise to a problem in
synchronization acquisition or in data transmission. Particularly, a top portion of
a burst includes a training sequence and/or a unique word for carrier synchronization
and/or clock synchronization and plays an important role in the transmission of a
data part.
[0015] If, on the contrary, the transmission level control response over the signalling
channel is made faster, so as to allow quick convergence to a predetermined transmission
level, in order to eliminate the problem described above, then the problem may possibly
occur that, when the transmission level is controlled after the reception level information
of the other station is received over the communication channel, the frame synchronization
of the other station cannot be maintained, or that the transmission power control
becomes unstable. Such problems are significant particularly where the transmission
level control step is large.
[0016] It is a feature of a transmission power control method and apparatus for a mobile
radio satellite communication system to be described below, by way of example in illustration
of the invention, that frame synchronization maintenance and synchronization acquisition
of a receiving station and optimum transmission power control are made possible with
a simple construction which does not require any complicated control.
[0017] In a particular arrangement to be described below, by way of example in illustration
of the present invention, a method for the control of the transmission power in a
mobile radio satellite communication system having a gateway station and a terminal/mobile
station to provide communication by demand assignment using a signalling channel and
a communication channel via a communication satellite, includes the step of controlling
a transmission power control loop provided in any of the gateway station and the terminal/mobile
station for controlling the transmission power of the gateway station or of terminal/mobile
station so that, when a transmission channel for current use is to be changed over
from the signalling channel to the communication channel, the response speed of the
transmission power control loop is set to a comparatively low value, but when the
transmission channel for current use is to be changed over from the communication
channel to the signalling channel, the response speed of the transmission power control
loop is set to a comparatively high value.
[0018] In one transmission power control apparatus for a mobile radio satellite communication
system to be described below, by way of example, in illustration of the invention
where a gateway station and a terminal/mobile station effect communication by assignment
on demand using a signalling channel and a communication channel via a communication
satellite, there are a transmission power control loop in each of the gateway station
and the terminal/mobile station for controlling the transmission power of the gateway
station or the terminal/mobile station, and control means for controlling the transmission
power control loop of each of the gateway station and the terminal/mobile station
so that, when a transmission channel for current use is to be changed over from the
signalling channel to the communication channel, the response speed of the transmission
power control loop is set to a comparatively low value, but when the transmission
channel for current use is to be changed over from the communication channel to the
signalling channel, the response speed of the transmission power control loop is set
to a comparatively high value.
[0019] The transmission power control apparatus may be constructed such that the signalling
channel is used for communication with the gateway station, the terminal/mobile station
and a network control station, and the transmission power levels of the gateway station
and the terminal/mobile station are set to the highest level. Further, the transmission
power control apparatus may be constructed such that the communication channel is
used for communication between the gateway station and the terminal/mobile station,
and the transmission power levels of the gateway station and the terminal/mobile station
are set to an optimum transmission level based on a reception level detected by one
and transmitted to the other of the gateway station and the terminal/mobile station.
[0020] The transmission power control loop may include a transmission power controller for
receiving an input signal and controlling the transmission level for the signal in
accordance with a control signal, comparison means being provided for detecting the
transmission level of an output from the transmission power controller and the detected
transmission level being compared with a preset transmission level to detect an error
in the level of the detected transmission level from a preset transmission level,
averaging means being provided for controlling the response speed of the transmission
power control loop based on the error of the level detected by the comparison means,
and means being provided for receiving an output of the averaging means and producing
a control signal controlling the transmission power controller so that the error level
may be minimised.
[0021] The averaging means may include discrimination means for discriminating the polarity
of the error level, conversion means for converting the error level from an analog
signal into a digital signal for a period corresponding to a predetermined sample
number, selection means for selecting the predetermined sampling number from within
a plurality of average sample numbers based on an output of the discrimination means,
and control means for averaging a number of error levels, successively output after
each fixed interval of time from the comparison means, which is equal to the predetermined
sample number selected by the selection means to obtain a digital signal to be used
as the control signal for the transmission power controller.
[0022] Alternatively the averaging means may include discrimination means for discriminating
the polarity of the error level, a filter for receiving the error level, the filter
having a cutoff frequency which is variable in response to a control signal, selection
means for selecting the cutoff frequency of the filter based on an output of the discrimination
means, and control means for controlling the transmission power controller through
the filter with the cutoff frequency selected by the selection means.
[0023] Another arrangement to be described below by way of example in illustration of the
present invention, includes transmission power control apparatus for a mobile radio
satellite communication system having a gateway station and a terminal/mobile station
in which communication is effected by assignment on demand using a signalling channel
and a communication channel via a communication satellite, there being transmission
power control apparatus in each of the gateway station and the terminal/mobile station,
and the transmission power control apparatus including a transmission power controller
for receiving an input signal and controlling a transmission level for the signal
in accordance with a control signal, a power amplifier for amplifying the output power
of the transmission power controller to a predetermined transmission level, a level
detector for detecting the transmission level of the output of the power amplifier,
a control circuit for analyzing received information transmitted from the other of
the gateway station and the terminal/mobile station to set an optimum transmission
level, a comparison circuit for comparing the transmission level detected by the level
detector with an optimum transmission level, a discrimination circuit for discriminating
the polarity of the output signal of the comparison circuit and outputting a selection
control signal for an average sample number or average time, a selection circuit for
selecting an average sample number in accordance with the selection signal from the
discrimination circuit, and an averaging circuit for averaging a number of error levels
successively output after each fixed interval of time from the comparison circuit
which is equal to the average sample number designated by the selection circuit to
obtain a digital signal to be used as the control signal for the transmission power
controller.
[0024] Yet another transmission power control apparatus for a mobile radio satellite communication
system, to be described below, by way of example in illustration of the invention
wherein a gateway station and a terminal/mobile station effect communication by assignment
on demand, using a signalling channel and a communication channel via a communication
satellite, the transmission power control apparatus being provided in each of a transmission
section of the gateway station and the terminal/mobile station, includes a transmission
power controller for receiving an input signal and controlling a transmission level
for the signal in accordance with a control signal, a power amplifier for amplifying
the power of an output of the transmission power controller to a predetermined transmission
level, a level detector for detecting the transmission level of an output of the power
amplifier, a control circuit for analyzing the reception information transmitted from
the other one of the gateway station and the terminal/mobile station to set an optimum
transmission level, a comparison circuit for comparing the transmission level detected
by the level detector with the optimum transmission level, a discrimination circuit
for discriminating the polarity of an output signal of the comparison circuit and
outputting a selection signal for selecting a filter cutoff frequency, a selection
circuit for selecting a filter cutoff frequency in response to the selection signal
from the discrimination circuit, and an averaging circuit including a filter of a
variable cutoff frequency for averaging a number of error levels successively output
after each fixed interval of time from the comparison circuit which corresponds to
the cutoff frequency designated by the selection circuit to obtain a digital signal
to be used as the control signal for the transmission power controller.
[0025] With a transmission power control method and apparatus such as one of those described
above, the transmission level during transmission is monitored and the monitored transmission
level is compared with a preset transmission level to change over the average time
for sampling the error between the transmission levels to vary the response speed
with a simple circuit arrangement which does not require a complicated control. Consequently,
when the channel for current use is to be changed over from a signalling channel to
a communication channel, the transmission power is controlled so that there is no
trouble with synchronization at the reception side. Furthermore, when the channel
for current use is to be changed over from the communication channel to the signalling
channel, the transmission power is controlled rapidly to a standard level so that
there is no trouble in synchronization acquisition or data transmission.
[0026] The following description and Figs. 1 and 2 of the accompanying drawings, disclose,
by means of an example, the invention which is characterised in the appended claims,
whose terms determine the extent of the protection conferred hereby.
[0027] In the drawings:-
Fig. 1 is a block schematic diagram of a transmission section of a gateway station
and a terminal/mobile station to which a transmission power control apparatus is applied,
and
Fig. 2 is a time chart illustrating a variation of the transmission power by the tranmsission
power control apparatus shown in Fig. 1.
[0028] Referring to Fig. 1, there is shown transmission power control apparatus for incorporation
in each of a gateway station and a terminal/mobile station, such as the gateway stations
12 and the terminal/mobile stations 13 described above with reference to Fig. 3.
[0029] The transmission power control apparatus of Fig. 1 may be incorporated in a transmission
section of each of gateway stations and terminal/mobile stations of a satellite communication
system which effects the call connection of a single channel per carrier (SCPC) or
a frequency division multiple access (FDMA) system based on assignment on demand,
and includes a transmission power controller 1 for controlling the transmission level
of a modulation signal frequency converted by a frequency converter (not shown), a
power amplifier 2 for power amplifying an output of the transmission power controller
1 to a predetermined transmission level and outputting the power amplified signal
to an antenna not shown, a level detector 3 for detecting the output level of the
power amplifier 2, a control circuit 4 for analyzing reception information transmitted
to the station from another station and setting an optimum transmission level, a transmission
level setting circuit 5 for outputting a reference signal of the transmission level
set by the control circuit 4, a comparator 6 for comparing the transmission level
detected by the level detector 3 with the reference signal of the preset transmission
level, a discrimination circuit 7 for discriminating the polarity of a signal output
from the comparator 6 and outputting a selection control signal of an average sample
number (average time), a selection circuit 8 for selecting an average sample number
in response to the selection control signal from the discrimination circuit 7, and
an averaging circuit 9 for averaging a number of error levels successively output
after each fixed interval of time from the comparator 6 designated by the selection
circuit 8 to obtain a digital signal to be used as a control signal for the transmission
power controller 1.
[0030] The averaging circuit 9 may be formed from an analog to digital (A/D) converter which
receives an error component (analog signal) output from the comparator 6 and converts
the error component into a digital signal with a predetermined sampling number.
[0031] In this instance, the predetermined sample number can be selected from between two
average sample numbers L1 and L2 in response to an output of the discrimination circuit
7, and a digital signal which is produced on the basis of the selected average sample
number is used to control the transmission level of a modulation signal mentioned
above by the transmission power controller 1.
[0032] The operation of the transmission power control apparatus shown in Fig. 1 will now
be described.
[0033] Transmission data to be transmitted first undergo coding processing, such as error
correction, differential operation and scrambling and are then digitally modulated,
whereafter they are converted into a signal at a radio frequency by a frequency converter
not shown. The transmission level of the signal is adjusted by the transmission power
controller 1, and then the signal is power amplified to a predetermined level by the
power amplifier 2. The thus power amplified signal is sent out from the antenna (not
shown) through a duplexer (not shown). Further, the transmission level of the signal
being transmitted is monitored by the level detector 3.
[0034] The level at which the signal is to be transmitted is set at the transmission level
setting circuit 5 by the control circuit 4, and the transmission level setting circuit
5 produces a reference signal corresponding to one of the transmission levels.
[0035] The transmission level P detected by the level detector 3 and the reference signal
R of the thus set transmission level are compared with each other by the comparator
6 to detect an error (P - R) of the transmission level P from the transmission level
R. The error is averaged by the averaging circuit 9 while the polarity of the error
(P - R) is discriminated by the discrimination circuit 7, and the average sample number
of the averaging circuit 9 is controlled based on a result of the discrimination.
Here, the two average sample numbers L1 and L2 are prepared in advance by the selection
circuit 8, and one of the average sample numbers L1 and L2 is selectively determined
based on the result of the discrimination of the discrimination circuit 7. The transmission
power controller 1 is controlled by means of the result of the averaging of the error
with the selected average sample number. Consequently, a transmission power control
loop is formed from the elements 1, 2, 3, 6, 7, 8 and 9 described above.
[0036] If the average sample number of the averaging circuit 9 is set to a comparatively
high value, then the response speed is comparatively low, and the control system operates
stably, but if a comparatively small average sample number is selected, then a comparatively
high response speed is obtained, and convergence to the preset level is reached comparatively
quickly.
[0037] If the detected transmission level P is lower than the preset transmission level
R as seen from Table 1 below, that is, when P - R ≦ 0, the error is averaged by the
comparatively large average sample number L1, but if the detected transmission level
P is not higher than the preset transmission level R, that is, when P - R > 0, the
error is averaged with the comparatively small average sample number L2 (≧ L1).


[0038] By means of the control in accordance with the logic, the transmission channel is
changed over from the signalling channel 15 to the communication channel 16 such that,
when the transmission level is to be changed over from the maximum transmission level,
which is a standard level, to the designated low power level, until after the transmission
level is stabilized at the preset level to effect stabilized transmission, the transmission
level remains higher than the preset level, and consequently, the error from the preset
level is averaged with the comparatively large average sample number L1. The average
sample number L1 is then set so that synchronization maintenance on the reception
side can be performed without any trouble with the response speed.
[0039] Then, when the transmission channel is changed over from the communication channel
to the signalling channel and the transmission level is to be changed over from the
low power level to the maximum transmission level, which is a standard level, since
the transmission level remains lower than the preset level until after it converges
to the maximum transmission level, the error from the preset level is averaged with
the comparatively low average sample number L2. The convergence to the preset transmission
level is thus accelerated by the comparatively low average sample number L2, so that
the transmission power is controlled to allow transmission with a predetermined level
so that call connection can be performed stably even in a communication condition
which is the most severe for a call connection.
[0040] The averaging circuit 9 described hereinabove need not be formed from an analog to
digital converter, but may be formed from some other element having an equivalent
function. For example, the averaging circuit 9 may be formed from a low-pass filter
whose cutoff frequency can be controlled from the outside. In this instance, the output
of the discrimination circuit 7 is input to the selection circuit 8, by which the
cutoff frequency of the filter is controlled.
[0041] In particular, transmission power control is performed by the control of the selection
circuit 8 such that, where P□R, the cutoff frequency is set to a comparatively low
value to make the response speed low, but where P < R, the cutoff frequency is set
to a comparatively high value to make the response speed high. By the use of transmission
power control, the problem experienced upon changing over from a control circuit to
a communication channel can be minimised.
[0042] While a preferred embodiment illustrative of the present invention has been described
by way of example using specific terms, it will be understood that changes and variations
therein and other embodiments may be conceived within the scope of the protection
sought by the following claims.
1. A method of transmission power control for use in a mobile radio satellite communication
system wherein a gateway station (12) and a terminal/mobile station (13) effect communication
by assignment on demand using a signalling channel (15) and a communication channel
(16) via a communication satellite (14), characterised in that a transmission power
control loop (1, 2, 3, 6, 9), provided in one of the gateway station (12) and the
terminal/mobile station (13) for controlling the transmission power of the gateway
station (12) or the terminal/mobile station (13), is controlled so that, when a transmission
channel for current use is to be changed over from the signalling channel (15) to
the communication channel (16), a response speed of the transmission power control
loop (1, 2, 3, 6, 9) is set to a lower value, but when the transmission channel for
current use is to be changed over from the communication channel (16) to the signalling
channel (15), the response speed of the transmission power control loop (1, 2, 3,
6, 9) is set to a higher value.
2. A transmission power control apparatus for use in a mobile radio satellite communication
system wherein a gateway station (12) and a terminal/mobile station (13) effect communication
by assignment on demand using a signalling channel (15) and a communication channel
(16) via a communication satellite (14), characterized in that it includes a transmission
power control loop (1, 2, 3, 6, 9) provided in one of the gateway station (12) and
the terminal/mobile station (13) for controlling the transmission power of the gateway
station (12) or the terminal/mobile station (13), and control means (7, 8) for controlling
the transmission power control loop (1, 2, 3, 6, 9) of the gateway station (12) or
the terminal/mobile station (13) so that, when a transmission channel for current
use is to be changed over from the signalling channel (15) to the communication channel
(16), the response speed of the transmission power control loop (1, 2, 3, 6, 9) is
set to a lower value, but when the transmission channel for current use is to be changed
over from the communication channel (16) to the signalling channel (15), the response
speed of the transmission power control loop (1, 2, 3, 6, 9) is set to a higher value.
3. A transmission power control apparatus for a mobile radio satellite communication
system as claimed in claim 2, in which the signalling channel (15) is used for communication
with the gateway station (12), the terminal/mobile station (13) and a network control
station (11), and the transmission power levels of the gateway station (12) and the
terminal/mobile station (13) are set to the highest level.
4. A transmission power control apparatus for a mobile radio satellite communication
system as claimed in claim 2, in which the communication channel (16) is used for
communication between the gateway station (12) and the terminal/mobile station (13),
and the transmission power levels of the gateway station (12) and the terminal/mobile
station (13) are set to an optimum transmission level based on a received level detected
by one and transmitted to the other one of the gateway station (12) and the terminal/mobile
station (13).
5. A transmission power control apparatus for a mobile radio satellite communication
system as claimed in claim 2, in which the transmission power control loop (1, 2,
3, 6, 9) includes a transmission power controller (1) for receiving an input signal
and controlling the transmission level for the signal in accordance with a control
signal, comparison means (6) for detecting a transmission level of an output of the
transmission power controller (1) and comparing the detected transmission level with
a preset transmission level to detect the level of an error between the detected transmission
level and the preset transmission level, averaging means (9) for controlling the response
speed of the transmission power control loop (1, 2, 3, 6, 9) based on the level of
the error detected by the comparison means (6), and means (7, 8, 9) for receiving
the output of the averaging means (9) and producing a control signal controlling the
transmission power controller (1) so that the level of the error may be minimized.
6. A transmission power control apparatus for a mobile radio satellite communication
system as claimed in claim 5, in which the averaging means (9) includes discrimination
means (7) for discriminating the polarity of the error level, conversion means (9)
for converting the error level from an analog signal into a digital signal for a period
corresponding to a predetermined sample number, selection means (8) for selecting
the predetermined sampling number from within a plurality of average sample numbers
based on an output of the discrimination means (7), and control means (9) for averaging
a number of error levels successively output after each fixed interval of time from
the comparison means (6) which is equal to the predetermined sample number selected
by the selection means (8) to obtain a digital signal to be used as the control signal
for the transmission power controller (1).
7. A transmission power control apparatus for a mobile radio satellite communication
system as claimed in claim 5, in which the averaging means (9) includes discrimination
means (7) for discriminating the polarity of the error level, a filter (9) for receiving
the error level, the filter having a cutoff frequency which is variable in response
to a control signal, selection means (8) for selecting the cutoff frequency of the
filter based on an output of the discrimination means (7), and control means (9) for
controlling the transmission power controller (1) through the filter (9) with the
cutoff frequency selected by the selection means (8).
8. A transmission power control apparatus for a mobile radio satellite communication
system in which a gateway station (12) and a terminal/mobile station (13) effect communication
by assignment on demand using a signalling channel (15) and a communication channel
(16) via a communication satellite (14), the transmission power control apparatus
being provided in one of the gateway station (12) and the terminal/mobile station
(13), characterised in that the transmission power control apparatus includes a transmission
power controller (1) for receiving an input signal and controlling the transmission
level for the signal in accordance with a control signal, a power amplifier (2) for
amplifying the power of an output of the transmission power controller (1) to a predetermined
transmission level, a level detector (3) for detecting the transmission level of an
output of the power amplifier (2), a control circuit (4) for analyzing received information
transmitted from the other one of the gateway station (12) and the terminal/mobile
station (13) to set an optimum transmission level, a comparison circuit (6) for comparing
the transmission level detected by the level detector (3) with the optimum transmission
level, a discrimination circuit (7) for discriminating the polarity of an output signal
of the comparison circuit (6) and outputting a selection control signal for an average
sample number or average time, a selection circuit (8) for selecting an average sample
number in accordance with the selection signal from the discrimination circuit (7),
and an averaging circuit (9) for averaging a number of error levels successively output
after each fixed interval of time from the comparison circuit (6) which is equal to
the average sample number designated by the selection circuit (8) to obtain a digital
signal to be used as the control signal for the transmission power controller (1).
9. A transmission power control apparatus for a mobile radio satellite communication
system in which a gateway station (12) and a terminal/mobile station (13) effect communication
by assignment on demand using a signalling channel (15) and a communication channel
(16) via a communication satellite (14), the transmission power control apparatus
being provided in one of a transmission section of the gateway station (12) and of
the terminal/mobile station (13), the transmission power control apparatus being characterized
in that it includes a transmission power controller (1) for receiving an input signal
and controlling the transmission level for the signal in accordance with a control
signal, a power amplifier (2) for power amplifying an output of the transmission power
controller (1) to a predetermined transmission level, a level detector (3) for detecting
a transmission level of the output of the power amplifier (2), a control circuit (4)
for analyzing received information transmitted from the other one of the gateway station
(12) and the terminal/mobile station (13) to set an optimum transmission level, a
comparison circuit (6) for comparing the transmission level detected by the level
detector (3) with the optimum transmission level, a discrimination circuit (7) for
discriminating the polarity of an output signal of the comparison circuit (6) and
outputting a selection signal for selecting a filter cutoff frequency, a selection
circuit (8) for selecting a filter cutoff frequency in response to the selection signal
from the discrimination circuit (7), and an averaging circuit (9) including a filter
of a variable cutoff frequency for averaging a number of error levels successively
output after each fixed interval of time from the comparison circuit (6) which corresponds
to the cutoff frequency designated by the selection circuit (8) to obtain a digital
signal to be used as the control signal for the transmission power controller (1).